The molar concentration of chloride ions in the resulting solution of 300 mL of 3.0 M NaCl and 200 mL of 4.0 M ` BaCl _ 2 ` will beA. `1.7 ` MB. `1.8 ` MC. ` 5.0 ` MD. ` 3.5 ` M

The molar concentration of chloride ions in the resulting solution of

1.	The molar concentration of chloride ions in the resulting solution of 300 mL of 3.0 M NaCl and 200 mL of 4.0 M ` BaCl _ 2 ` will beA. `1.7 ` MB. `1.8 ` MC. ` 5.0 ` MD. ` 3.5 ` M
Answer» Correct Answer - C ` underset (" 3.0 M") ( NaCl) hArr Na ^ + + underset("3.0 M")(Cl ^ - ) ` `underset ("4.0 M") (BaCl_2)hArr Ba^( 2 + ) + underset ( 2xx 4.0 M) ( 2Cl^-) ` ` therefore ` Molar concentration of ` Cl^- = ( M _ 1 V _ 1 + M _ 2 V _ 2 ) /( V _ 1 + V _ 2 ) ` ` = (3.0 xx 300 + 2 xx 4.0 xx 200 ) /( 300 + 200 ) ` ` = ( 900 + 1600 )/( 500 ) ` ` = 5.0 M `

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The molar concentration of chloride ions in the resulting solution of 300 mL of 3.0 M NaCl and 200 mL of 4.0 M ` BaCl _ 2 ` will beA. `1.7 ` MB. `1.8 ` MC. ` 5.0 ` MD. ` 3.5 ` M

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